Pumping liners with self-adjusting pumping conductance
Pump liners and process chambers with the pump liners are described. The pump liner has a ring-shaped body with an annular wall enclosing a process region. A plurality of circumferentially spaced openings provide fluid communication through the annular wall between the process region and a region outside of the ring-shaped body. Each of the plurality of circumferentially spaced openings has a self-adjusting valve assembly. Self-adjusting valves and processing methods are also described.
1 . A pump liner for a process chamber, the pump liner comprising:
a ring-shaped body having an annular wall enclosing a process region, the annular wall having an inner peripheral surface, an outer peripheral surface, an upper portion, and a lower portion;
a plurality of circumferentially spaced openings extending completely through the annular wall and providing fluid communication through the annular wall between the process region and a region outside of the ring-shaped body; and
a plurality of self-adjusting valve assemblies, each of the plurality of circumferentially spaced openings having a self-adjusting valve assembly in contact with the outer peripheral surface of the annular wall,
wherein each of the plurality of self-adjusting valve assemblies is configured to provide a substantially uniform pressure outside of the pump liner by self-adjusting to an open position when a pressure and a flow through the plurality of self-adjusting valve assemblies are the same and by self-adjusting to a sealed position when the pressure and/or the flow through the plurality of self-adjusting valve assemblies is imbalanced,
wherein the self-adjusting valve assembly comprises:
a valve housing having a sidewall and a distal end wall, the sidewall having an inner sidewall surface and an outer sidewall surface, the distal end wall having an inner end wall surface, an outer end wall surface and an aperture formed through the distal end wall;
an inner cylinder within the valve housing, the inner cylinder having an inner cylinder sidewall with a cavity, the inner cylinder sidewall having an inner cylinder outer sidewall surface spaced from the inner sidewall surface of the valve housing to provide a flow path, and an inner cylinder inner sidewall surface bounding the cavity;
a compression element within the cavity of the inner cylinder; and
a slidable gate within the cavity of the inner cylinder, the slidable gate connected to the compression element and aligned with the aperture in the valve housing,
wherein the compression element is configured to move the slideable gate between a full flow position allowing a flow of gas through the flow path and a sealed position preventing gas from flowing through the flow path, and the slidable gate moves in substantially an opposite direction from the flow of gas through the flow path.
2 . The pump liner of claim 1 , wherein the valve housing has a proximal end adjacent the outer peripheral surface of the annular wall.
3 . The pump liner of claim 2 , wherein the slidable gate is configured to contact the distal end wall of the valve housing adjacent the aperture to form a fluid-tight seal.
4 . The pump liner of claim 2 , wherein the inner cylinder has a flange at a proximal end of the inner cylinder, the flange having a proximal face and a distal face.
5 . The pump liner of claim 4 , wherein a proximal surface of the proximal end of the valve housing contacts the distal face of the flange.
6 . The pump liner of claim 4 , wherein the flange of the inner cylinder comprises a center opening with a plurality of outer openings positioned around the center opening.
7 . The pump liner of claim 6 , wherein the plurality of outer openings is aligned to allow a flow of fluid to pass through the flange into the flow path, and the center opening is aligned with the cavity in the inner cylinder to allow gas pressure from the process region to move the slidable gate.
8 . The pump liner of claim 1 , wherein the compression element comprises a spring.
9 . The pump liner of claim 1 , wherein each of the compression elements has a substantially same spring force constant.
10 . The pump liner of claim 1 , wherein the inner cylinder outer sidewall surface is spaced from the inner sidewall surface of the valve housing by an amount in the range of 0.5 inches to 0.8 inches.
11 . The pump liner of claim 1 , wherein the valve housing has a length in the range of 0.75 inches to 2 inches.
12 . The pump liner of claim 1 , wherein the ring-shaped body further comprises: a lower channel in the lower portion of the annular wall separated from an annular upper channel by a partition, the lower channel in fluid communication with the annular upper channel through at least one passage in the partition, and a slit valve opening in the lower portion of the annular wall extending from the inner peripheral surface to the outer peripheral surface.
13 . The pump liner of claim 1 , wherein there are in the range of 4 to 256 of the plurality of circumferentially spaced openings.
14 . The pump liner of claim 13 , wherein the plurality of circumferentially spaced openings are evenly spaced.
15 . A self-adjusting valve assembly comprising:
a valve housing having a sidewall and a distal end wall, the sidewall having an inner sidewall surface and an outer sidewall surface, the distal end wall having an inner end wall surface, an outer end wall surface, and an aperture formed through the distal end wall;
an inner cylinder within the valve housing, the inner cylinder having an inner cylinder sidewall with a cavity, the inner cylinder sidewall having an inner cylinder outer sidewall surface spaced from the inner sidewall surface of the valve housing to provide a flow path, and an inner cylinder inner sidewall surface bounding the cavity;
a compression element within the cavity of the inner cylinder; and
a slidable gate within the cavity of the inner cylinder, the slidable gate connected to the compression element and aligned with the aperture in the valve housing,
wherein the compression element is configured to move the slidable gate between a full flow position allowing a flow of gas through the flow path and a sealed position preventing gas from flowing through the flow path, and the slidable gate moves in sustainably an opposite direction from the flow of gas through the flow path.
16 . The pump liner of claim 1 , wherein a flow conductance of the pump liner is self-adjusting using spring actuation and a local pressure difference in each valve assembly.